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Impact of ammonium sulfite-based sequential pretreatment combinations on two distinct saccharifications of wheat straw

The properties of lignocellulosic substrates obtained from different pretreatments have a big impact on downstream saccharification based on both the fungal cellulase system and the cellulosome-based whole-cell biocatalysis system. However the corresponding effect of these two distinct saccharificat...

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Autores principales: Yu, Guang, Liu, Shiyue, Feng, Xiaoyan, Zhang, Yuedong, Liu, Chao, Liu, Ya-Jun, Li, Bin, Cui, Qiu, Peng, Hui
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9053470/
https://www.ncbi.nlm.nih.gov/pubmed/35521439
http://dx.doi.org/10.1039/d0ra01759k
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author Yu, Guang
Liu, Shiyue
Feng, Xiaoyan
Zhang, Yuedong
Liu, Chao
Liu, Ya-Jun
Li, Bin
Cui, Qiu
Peng, Hui
author_facet Yu, Guang
Liu, Shiyue
Feng, Xiaoyan
Zhang, Yuedong
Liu, Chao
Liu, Ya-Jun
Li, Bin
Cui, Qiu
Peng, Hui
author_sort Yu, Guang
collection PubMed
description The properties of lignocellulosic substrates obtained from different pretreatments have a big impact on downstream saccharification based on both the fungal cellulase system and the cellulosome-based whole-cell biocatalysis system. However the corresponding effect of these two distinct saccharification strategies has not been comparatively analyzed. In this work, three ammonium sulfite (AS)-based pretreatment combinations (i.e., AS + hydrothermal (HT) pretreatment, AS + xylanase (X) pretreatment, and HT + AS pretreatment) were conducted to treat wheat straw. The obtained pretreated substrates with different properties were saccharified using fungal cellulase or an engineered Clostridium thermocellum strain as the whole-cell biocatalyst, and the ability to release sugar was comparatively evaluated. It was found that for the whole-cell saccharification, the total sugar digestibility of AS + HT/X pretreated wheat straw was 10% higher than that of HT + AS pretreated wheat straw. However, for fungal cellulase-based saccharification, the enzymatic hydrolysis efficiency was less susceptible to the sequence of pretreatment combinations. Hence, the whole-cell biocatalysis system was more sensitive to substrate accessibility compared to the free enzymes. In addition, the characterization and analyses showed that AS + HT/X pretreatment could remove more lignin, generating a more accessible surface with a larger external surface and lower surface lignin coverage, compared to the HT + AS pretreatment. Therefore, the AS + HT/X pretreatment was more compatible with the cellulosome-based whole-cell saccharification.
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spelling pubmed-90534702022-05-04 Impact of ammonium sulfite-based sequential pretreatment combinations on two distinct saccharifications of wheat straw Yu, Guang Liu, Shiyue Feng, Xiaoyan Zhang, Yuedong Liu, Chao Liu, Ya-Jun Li, Bin Cui, Qiu Peng, Hui RSC Adv Chemistry The properties of lignocellulosic substrates obtained from different pretreatments have a big impact on downstream saccharification based on both the fungal cellulase system and the cellulosome-based whole-cell biocatalysis system. However the corresponding effect of these two distinct saccharification strategies has not been comparatively analyzed. In this work, three ammonium sulfite (AS)-based pretreatment combinations (i.e., AS + hydrothermal (HT) pretreatment, AS + xylanase (X) pretreatment, and HT + AS pretreatment) were conducted to treat wheat straw. The obtained pretreated substrates with different properties were saccharified using fungal cellulase or an engineered Clostridium thermocellum strain as the whole-cell biocatalyst, and the ability to release sugar was comparatively evaluated. It was found that for the whole-cell saccharification, the total sugar digestibility of AS + HT/X pretreated wheat straw was 10% higher than that of HT + AS pretreated wheat straw. However, for fungal cellulase-based saccharification, the enzymatic hydrolysis efficiency was less susceptible to the sequence of pretreatment combinations. Hence, the whole-cell biocatalysis system was more sensitive to substrate accessibility compared to the free enzymes. In addition, the characterization and analyses showed that AS + HT/X pretreatment could remove more lignin, generating a more accessible surface with a larger external surface and lower surface lignin coverage, compared to the HT + AS pretreatment. Therefore, the AS + HT/X pretreatment was more compatible with the cellulosome-based whole-cell saccharification. The Royal Society of Chemistry 2020-05-01 /pmc/articles/PMC9053470/ /pubmed/35521439 http://dx.doi.org/10.1039/d0ra01759k Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Yu, Guang
Liu, Shiyue
Feng, Xiaoyan
Zhang, Yuedong
Liu, Chao
Liu, Ya-Jun
Li, Bin
Cui, Qiu
Peng, Hui
Impact of ammonium sulfite-based sequential pretreatment combinations on two distinct saccharifications of wheat straw
title Impact of ammonium sulfite-based sequential pretreatment combinations on two distinct saccharifications of wheat straw
title_full Impact of ammonium sulfite-based sequential pretreatment combinations on two distinct saccharifications of wheat straw
title_fullStr Impact of ammonium sulfite-based sequential pretreatment combinations on two distinct saccharifications of wheat straw
title_full_unstemmed Impact of ammonium sulfite-based sequential pretreatment combinations on two distinct saccharifications of wheat straw
title_short Impact of ammonium sulfite-based sequential pretreatment combinations on two distinct saccharifications of wheat straw
title_sort impact of ammonium sulfite-based sequential pretreatment combinations on two distinct saccharifications of wheat straw
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9053470/
https://www.ncbi.nlm.nih.gov/pubmed/35521439
http://dx.doi.org/10.1039/d0ra01759k
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